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Lutein from Tagetes erecta

Chemical and Technical Assessment 63rdJECFA. Lutein from Tagetes erecta Chemical and Technical Assessment (CTA). First draft prepared by Richard Cantrill FAO 2004. 1 Summary Lutein from Tagetes erecta L. is a purified extract obtained from marigold oleoresin, which is extracted from the petals of marigold flowers with organic solvents. The final product, after saponification, contains, as a major component, Lutein and a smaller proportion of zeaxanthin. Lutein (3R,3'R,6'R- -carotene-3,3'-diol). is a member of a group of pigments known as xanthophylls and has no provitamin A activity. Lutein from Tagetes erecta L. has not previously been evaluated by JECFA although xanthophylls, of which Lutein is a member, were considered at the 31st JECFA (1987).

Chemical and Technical Assessment 63rdJECFA 1 (5) Lutein from Tagetes erecta Chemical and Technical Assessment (CTA) First draft prepared by Richard Cantrill

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Transcription of Lutein from Tagetes erecta

1 Chemical and Technical Assessment 63rdJECFA. Lutein from Tagetes erecta Chemical and Technical Assessment (CTA). First draft prepared by Richard Cantrill FAO 2004. 1 Summary Lutein from Tagetes erecta L. is a purified extract obtained from marigold oleoresin, which is extracted from the petals of marigold flowers with organic solvents. The final product, after saponification, contains, as a major component, Lutein and a smaller proportion of zeaxanthin. Lutein (3R,3'R,6'R- -carotene-3,3'-diol). is a member of a group of pigments known as xanthophylls and has no provitamin A activity. Lutein from Tagetes erecta L. has not previously been evaluated by JECFA although xanthophylls, of which Lutein is a member, were considered at the 31st JECFA (1987).

2 Commercial xanthophyll preparations ( Tagetes extract) were again considered at the 55th JECFA and tentative specifications were published in FNP 52 Add 8 (2000) and were superseded by specifications published in FNP 52 Add 9 (2001) following the 57th JECFA (2001). It is used as a food colouring agent and nutrient supplement (food additive) in a wide range of baked goods and baking mixes, beverages and beverage bases, breakfast cereals, chewing gum, dairy product analogs, egg products, fats and oils, frozen dairy desserts and mixes, gravies and sauces, soft and hard candy, infant and toddler foods, milk products, processed fruits and fruit juices, soups and soup mixes in levels ranging from 2.

3 To 330 mg/kg. Specifications for Lutein were prepared at the 63rd JECFA and published in FNP 52 Add 12 (2004). 2 Description Chemistry and nature of the product Lutein is an oxycarotenoid, or xanthophyll, (synonyms: vegetable Lutein ; vegetable luteol; Bo-Xan; all-trans- Lutein ; 4',5'-didehydro-5',6'-dihydro-beta,beta- carotene-3,3'-diol) containing 2 cyclic end groups (one beta - and one alpha -ionone ring) and the basic C40 isoprenoid structure common to all carotenoids (see Figure 1). Although the polyene chain double bonds present in Lutein could exist in a cis or trans conformation, giving rise to a large number of possible mono-cis and poly-cis isomers, the vast majority of carotenoids are in the all-trans configurations (Rice-Evans et al.)

4 , 1997; IOM, 2000), as depicted in Figure 1. Lutein has been assigned Chemical Abstract Service (CAS) number 127-40-2 with a chemical formula of C40H5602 and a molecular weight of Extracts of marigold flowers, fresh raw kale, corn meal, spinach, and human plasma also contain small amounts of cis isomers of Lutein (Krinsky et al., 1990; Khachik et al., 1999). Lutein is commonly isolated from marigold oleoresin together with zeaxanthin. Figure 1. Structural formula of Lutein 1 (5). Chemical and Technical Assessment Lutein from Tagetes erecta 63rd JECFA. 3 Manufacturing Manufacturing Principle Lutein from Tagetes erecta L. is produced from marigold oleoresin.

5 The marigold oleoresin is extracted from dried marigold flower petals ( Tagetes erecta L) with hexane and contains Lutein , Lutein esters, other carotenoids and waxes. Purified Lutein is obtained from the oleoresin by saponification and crystallisation. Other raw materials used in the manufacturing process are potassium hydroxide, methanol or propylene glycol. Detailed Description The Committee received details of two separate manufacturing processes. The differences in the processes are in the method of saponification and crystallization. Both approaches have been incorporated into the CTA. The preparation of the marigold oleoresin from marigold flowers relies on the extraction of xanthophylls from the natural source material with hexane and does not include chemical synthesis.

6 Lutein is prepared from the oleoresin by saponification and crystallization. Under saponification conditions, fatty acids and waxes are removed from Lutein esters and zeaxanthin esters. This process employs mixing and heating and the reactions use potassium hydroxide, methanol or propylene glycol and water. During these processes crystals of Lutein are formed. The reaction mixture from the crystallization step is then diluted with water and the resulting crystals are dried by the removal of the residual water. 4 Chemical Characterization Composition of Lutein Lutein prepared in this manner contains more than 80% total carotenoids of which Lutein is present at 70 78.

7 %. Zeaxanthin (2 9%) and other carotenoids are also present. Waxes (14%) and fatty acids (1%), present in the unprocessed oleoresin, make up the balance of the material. Physico-chemical properties Lutein is a free-flowing orange-red powder. It is insoluble in water but it is soluble in hexane. Possible Impurities (including degradation products). Based on the information received, hexane and propylene glycol and methanol may be present at low levels following the oleoresin preparation and subsequent saponification step. Analytical Methods The analytical methods employed are found in FNP 5, the standards of other respected organizations, journal references and were developed in-house.

8 Rationale for Proposed Specifications The specifications are based on the manufacturing process and raw materials to define the composition of the crystalline material. Furthermore, the specifications have been produced to differentiate this material from the specification for Tagetes extract (FNP 52 Add 9 (2001). These specifications include some of the parameters of Lutein tested and identified above. The purity assay is designed to identify the levels of Lutein and total carotenoids within the final product. Batches containing less than Lutein would not meet specifications. Furthermore, the extraction solvents hexane, methanol and propylene glycol are included in the specifications to ensure residual levels of these are kept to a minimum.)

9 Ash, moisture and waxes are included since they form the major non-carotenoid portion of the final crystalline Lutein product. Lead is included in the specification for safety purposes, since high levels of the metal could have toxicity 2 (5). Chemical and Technical Assessment Lutein from Tagetes erecta 63rd JECFA. implications. In addition, analytical data from several different manufacturing lots of Lutein indicate that the methods of production give rise to a consistent product. The data supplied also support the proposed specifications, and suggest that the finished product produced by the manufacturing processes described is well within the product specifications.

10 5 Functional Use Technological Function Lutein is intended for use as a colouring agent and a nutrient supplement. Food Categories and Use Levels Lutein is used as a colouring agent in foods such as baked goods and baking mixes, beverages and beverage bases, breakfast cereals, chewing gum, dairy product analogs, egg products, fats and oils, frozen dairy desserts and mixes, gravies and sauces, hard candy, infant and toddler foods (other than infant formula), milk products, processed fruits and fruit juices, soft candy, and soups and soup mixes. The intended food uses and use levels ( 330 mg/kg) are presented in Appendix 1. 6 Reactions and Fate in Foods Stability testing performed on the Lutein products in commerce indicated that they are stable at room temperature for a period of 12 months.


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